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Topography of Synchronization of Somatosensory Evoked Potentials Elicited by Stimulation of the Sciatic Nerve in Rat

机译:刺激大鼠坐骨神经诱发的体感诱发电位同步的地形

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摘要

>Purpose: Traditionally, the topography of somatosensory evoked potentials (SEPs) is generated based on amplitude and latency. However, this operation focuses on the physical morphology and field potential-power, so it suffers from difficulties in performing identification in an objective manner. In this study, measurement of the synchronization of SEPs is proposed as a method to explore brain functional networks as well as the plasticity after peripheral nerve injury.>Method: SEPs elicited by unilateral sciatic nerve stimulation in twelve adult male Sprague-Dawley (SD) rats in the normal group were compared with SEPs evoked after unilateral sciatic nerve hemisection in four peripheral nerve injured SD rats. The characterization of synchronized networks from SEPs was conducted using equal-time correlation, correlation matrix analysis, and comparison to randomized surrogate data. Eigenvalues of the correlation matrix were used to identify the clusters of functionally synchronized neuronal activity, and the participation index (PI) was calculated to indicate the involvement of each channel in the cluster. The PI value at the knee point of the PI histogram was used as a threshold to demarcate the cortical boundary.>Results: Ten out of the twelve normal rats showed only one synchronized brain network. The remaining two normal rats showed one strong and one weak network. In the peripheral nerve injured group, only one synchronized brain network was found in each rat. In the normal group, all network shapes appear regular and the network is largely contained in the posterior cortex. In the injured group, the network shapes appear irregular, the network extends anteriorly and posteriorly, and the network area is significantly larger. There are considerable individual variations in the shape and location of the network after peripheral nerve injury.>Conclusion: The proposed method can detect functional brain networks. Compared to the results of the traditional SEP-morphology-based analysis method, the synchronized functional network area is much larger. Furthermore, the proposed method can also characterize the rapid cortical plasticity after a peripheral nerve is acutely injured.
机译:>目的:传统上,体感诱发电位(SEP)的地形是根据幅度和潜伏期生成的。但是,该操作着眼于物理形态和场势-功率,因此在客观地进行识别方面存在困难。在这项研究中,建议测量SEP的同步性,以探讨大脑功能网络以及周围神经损伤后可塑性的方法。>方法:单侧坐骨神经刺激在12名成年男性中引起的SEP将正常组的Sprague-Dawley(SD)大鼠与单侧坐骨神经半切后诱发的四只周围神经损伤SD大鼠的SEP进行比较。使用等时相关,相关矩阵分析以及与随机替代数据的比较,对来自SEP的同步网络进行了表征。相关矩阵的特征值用于识别功能同步神经元活动的簇,并计算参与指数(PI)以指示簇中每个通道的参与。将PI直方图的拐点处的PI值用作划分皮层边界的阈值。>结果:在十二只正常大鼠中,有十只显示出一个同步的大脑网络。其余两只正常大鼠显示出一个强网络和一个弱网络。在周围神经损伤组中,每只大鼠仅发现一个同步的大脑网络。在正常组中,所有网络形状看起来都是规则的,并且网络很大程度上包含在后皮质中。在受伤组中,网络形状看起来不规则,网络向前和向后延伸,并且网络面积明显更大。周围神经损伤后网络的形状和位置存在很大的个体差异。>结论:该方法可以检测功能性脑网络。与传统的基于SEP形态的分析方法的结果相比,同步功能网络的面积要大得多。此外,所提出的方法还可以表征在急性损伤周围神经后快速的皮质可塑性。

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